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Material: | Titanium Wire | Mesh: | 2-200mesh |
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Highlight: | titanium knitted wire mesh,compressed titanium weaving mesh,multi-layer titanium wire mesh |
Single, Double, Flat, Compressed & Multi-Layer Titanium Knitted Weaving Wire Mesh
Titanium Knitting Wire Mesh for gas-liquid and foam filtration is a corrosion-resistant mesh formed by interlooping fine titanium wires into a flexible, compressible structure. It is commonly used in demisters, mist eliminators, and foam breakers. Typical specifications include wire diameters from 0.08 mm to 0.3 mm, mesh widths from 40 mm to 600 mm, and lengths up to 30 meters per roll. The mesh can be single- or multi-layered, with densities ranging from 128 kg/m³ to 600 kg/m³, depending on the separation efficiency required.
Titanium Knitted Mesh for Medical Devices
Densely knitted titanium mesh rolls are primarily designed for medical device components. This mesh features finer loops with a wire diameter of around 0.08 to 0.15 mm, widths of approximately 50 to 200 mm, and high-density weaving. Its primary use is in medical implants and filtration components due to its biocompatibility, durability, and outstanding corrosion resistance.
Titanium Knitted Mesh for Industrial Gas-Liquid Separation
Titanium knitted mesh with clearly visible loops and uniform openings of approximately 1 to 2 mm is ideal for industrial gas-liquid separation. Typically, wire diameters range from 0.1 to 0.2 mm. This structure is well-suited for industrial scenarios requiring efficient gas-liquid separation, mist elimination, or foam breaking due to its inherent compressibility and effective filtering efficiency.
Titanium Knitted Mesh for Aerospace Filtration
Titanium knitted mesh with an open-loop structure is specifically designed for aerospace filtration systems. The wire diameter generally ranges from 0.08 mm to 0.25 mm, featuring wider apertures of approximately 2 to 4 mm. This type of mesh is valued in aerospace applications for its lightweight construction, high strength-to-weight ratio, and exceptional resistance to extreme temperatures.
Contact Person: Mr. Devin Wang
Fax: 86-318-7896133